The present invention relates to a method for operating a wind turbine with a generator, drivable by a rotor, for supplying electrical power to an electrical load, in particular an electric grid. In order to compensate for fluctuations in the grid as far as possible, the system of the kind initially specified is developed in such a way that the power delivered to the load by the generator is regulated in response to a current outputted to the load.
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16. A power system, comprising:
a wind power installation including:
an electrical generator coupled to a rotor to output electrical power to an electrical grid;
a sensor operable to detect a fault in the grid;
a regulating device configured to maintain connection of the wind power installation to the grid during the fault and to continue to supply a limited current from the wind power installation to the grid during the fault; and
an external command input; and
a control station remote from the wind power installation operable to adjust the limited current during the fault by commands given to the external command input of the wind power installation.
30. A method for operating a wind turbine comprising:
generating electrical power from a generator coupled to a rotor and driven by wind;
outputting the electrical power from the wind turbine to an electrical grid;
detecting a fault in the electrical grid based upon a sensed parameter; and
regulating the electrical power output to the electrical grid such that at least an electrical current of the electrical power output to the electrical grid does not exceed a selected amount, and such that the wind turbine remains operable and connected to the electrical grid so that the electrical power is output to the electrical grid during the fault;
controlling the amount of power supplied by the wind turbine to the grid by commands submitted to an external command input of the wind power turbine from a control center remote from the wind power turbine; and
resuming normal function of the wind turbine when the fault is no longer on the grid.
1. A method for operating a power system comprising:
generating electrical power with an electrical generator of a wind power installation driven by a rotor to output the electrical power to an electrical grid;
sensing an electrical current of the electrical power outputted to the electrical grid to detect a fault in the grid;
maintaining connection of the wind power installation to the grid during the fault to continue to supply electrical current to the grid from the wind power installation during the fault;
limiting the electrical current delivered by the wind power installation to the grid during the fault to less than a selected amount;
controlling the wind power installation from a control station distant from the wind power installation to remotely adjust the amount of electrical current delivered by the wind power installation to the grid during the fault; and
resuming normal function of the wind power installation when the fault is no longer in the grid.
2. The method of
regulating the electrical power outputted by the generator to a load in response to an amount of current outputted to the load.
3. The method of
wherein the electrical current is an alternating current with a predefinable frequency.
4. The method of
wherein the predefinable frequency is substantially equal to a frequency of the grid.
5. The method of
wherein the outputted power does not exceed a predefinable amount, has a predefinable phase position and includes a predefinable proportion of reactive current.
6. The method of
wherein the power system is a multiphase system and phase position and a proportion of reactive current for each phase do not exceed a predefinable value.
7. The method of
wherein for each phase a value independent of other phases can be predefined.
8. The method of
wherein the electrical current is limited for every phase affected by a short circuit to a momentary value at a moment the short circuit occurs.
9. The method of
11. The method of
limiting the electrical power outputted to the electrical grid to at least a predefinable amount of electrical power.
12. The method of
limiting the electrical power outputted to the electrical grid to at least a predefinable phase position.
13. The method of
limiting the electrical power outputted to the electrical grid to at least a predefinable proportion of reactive current.
17. The power system of
a microprocessor operable to compare a sensed electrical current outputted to the grid with a selected current value.
18. The power system of
19. The power system of
a device to detect a short circuit in the grid.
20. The power system of
a voltage sensing device to detect a voltage of at least one phase in the grid.
21. The power system of
a phase monitor to detect a phase position of currents and voltages of at least one phase in the grid.
22. The power system of
wherein the electrical generator remains connected to the grid when the short circuit occurs.
23. The power system of
control signals are received via the external command input from a grid operator, and in response to said control signals from the grid operator the wind power installation is controlled in response to needs of the grid operator and hence that electrical power, including a non-reactive power, a wind power, a current position, a voltage position or a phase position, is fed into the grid in a form as required by the grid operator.
24. The power system of
26. The power system of
27. The power system of
28. The power system of
a rectifier coupled to the generator and operable to rectify alternating current (AC) power produced by the generator to direct current (DC) power; and
an inverter coupled between the rectifier and the grid and operable to convert the DC power to AC power with a frequency corresponding to a grid frequency.
29. The power system of
a microprocessor operable to control at least the inverter, wherein the inverter is controlled so that at least the electrical current of the electrical power output to the electrical grid does not exceed a selected value.
32. The method of
33. The method of
sensing a grid voltage deviation of more than 20% from a reference value to determine the occurrence of the substantial disruption.
34. The method of
sensing a grid voltage deviation of more than 40% from a reference value to determine the occurrence of the substantial disruption.
35. The method of
sensing an electrical current of the electrical power output to the electrical grid such that regulating the electrical power is based upon the sensed electrical current.
36. The method of
sensing a grid frequency of the electrical power output to the electrical grid such that regulating the electrical power is based upon the sensed grid frequency.
37. The method of
sensing an amount of the electrical power output to the electrical grid such that regulating the electrical power is based upon the sensed power amount.
38. The method of
sensing a power gradient of the electrical power output to the electrical grid such that regulating the electrical power is based upon the sensed power gradient.
39. The method of
sensing a power factor of the electrical power output to the electrical grid such that regulating the electrical power is based upon the sensed power factor.
40. The method of
rectifying an alternating current (AC) power produced by the generator of the wind turbine to direct current (DC) power;
converting the DC power to AC power with a frequency corresponding to a grid frequency; and
monitoring a parameter associated with the AC power output to the grid such that at least the electrical current of the generator does not exceed a selected generator current value during the fault.
41. The method of
sensing a short circuit on the grid to determine occurrence of the fault.
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1. Field of the Invention
The present invention relates to a method for operating a wind turbine with an electrical generator, drivable by a rotor, for supplying electrical power to an electrical load, in particular an electric grid.
The invention further relates to a wind turbine with a rotor and an electrical generator coupled to the rotor for supplying electrical power to an electrical load, in particular an electric grid.
2. Description of the Related Art
In known wind turbines for generating electrical energy from wind energy, the generator with the electrical load, often an electric grid, is operated in a grid-parallel mode. In other words, as soon as the wind supply is sufficient, the wind turbine will generate electrical energy and deliver it to the grid.
However, if a failure occurs in the grid, for example as a result of a short circuit in the grid, wind turbines have hitherto been disconnected from the grid and not reconnected to the grid until normal operating conditions have been restored.
This means that, following such a grid failure, is no longer possible to provide the rapid support for the grid that is particularly needed when there are large fluctuations in the voltage and/or power that is required.
The object of the present invention is therefore to provide a control system for one or more wind turbines that compensate as far as possible for fluctuations in the grid.
This object is achieved with a method of the kind initially specified, in which the power delivered to the load by the generator is regulated in response to a current that is outputted to the load.
In a device of the kind initially specified, the object is achieved by a control device comprising a current sensor for measuring an electrical current delivered to the load, such that the power delivered by the generator to the load can be controlled in response to the current that is received by the current sensor.
In this way, the required power can be generated and delivered when there are fluctuations in the power requirements from the grid.
In order to avoid overload of parts of the wind turbine and/or the grid in the event of a grid failure, for example as a result of a short circuit in the grid, the wind turbine is controlled in such a way that the current delivered to the grid does not exceed a predefined value.
In a particularly preferred embodiment of the invention, the maximum current level that can be delivered is regulated for each grid phase, in order to support the grid as far as possible, on the one hand, without exposing components to the risk of damage, on the other hand.
A particularly preferred embodiment is one in which the wind turbine can be operated by an external input that corresponds to the stipulations made by a distant control station. In this way, a power supply company for example can request the wind turbine to deliver the amount of current which is needed at that moment to support the grid.
Other advantageous embodiments of the invention are described in the subclaims.
One embodiment of the invention shall now be described in detail with reference to the figures. These show:
A wind turbine 2, shown in simplified form in
With the help of a current sensor (not shown), the amount of current being fed into the grid 6 (
If the current fed into the grid 6 now exceeds the predefined maximum current I(max), the power generated by the entire wind turbine (and/or its generator) is adjusted by the regulating device in such a way that the current delivered to the grid does not exceed the predefined threshold value I(max). In the event of a short circuit, said current regulation can be accomplished, for example, by the wind turbine delivering a significantly lower level of power output to the grid than previously, while using elsewhere outside the grid the power that consequently is not fed to the grid, for example for a dumpload (resistance), or by feeding the power which is not fed to the grid to capacitors or other interim storage devices. As soon as full availability of the grid is restored, delivery of the stored energy to the grid can be resumed.
In this way, even when there is a short circuit in the grid, the wind turbine can continue to deliver power to the grid and support the grid without the current exceeding the predefined threshold value as a result of the short circuit.
If the measured current (level) I(actual) of a phase rises above a predetermined maximum current, the inverter 18 is controlled in such a way that the current (level) falls below the predefined maximum current I(max), with the electrical energy generated from wind energy and not delivered to the grid being used elsewhere, for example by being outputted to a resistance (dumpload) or stored in an interim storage device (e.g., a capacitor or Ultracap).
The control system for the wind turbine can operate independently. The wind turbine then detects a short circuit in the grid, for example by monitoring the voltages of the separate grid phases and/or their phase position. If predefinable threshold values for voltages and/or phase differences are reached, the wind turbine recognizes a short circuit and operates according to an algorithm provided for such a case.
Owing to the external access (22), it is possible, for example for the power supply company to whose grid the wind turbine is connected, to intervene in the operation of the wind turbine and, for example, to modify the amount of current to be delivered to the grid, the type of current (active current, reactive current) and/or the phase angle and/or phase position, etc. In this way, the power supply company can adjust precisely those values (current, voltage, electrical power) in respect of the power to be delivered to the grid by the wind turbine that correspond to the requirements of the network operator.
Patent | Priority | Assignee | Title |
10063060, | May 07 2013 | Wobben Properties GmbH | Method for feeding electric power into an electric power supply system |
10063061, | Jun 10 2013 | Wobben Properties GmbH | Method for feeding electric power into an electric supply network |
11025052, | Jan 22 2018 | Rockwell Automation Technologies, Inc. | SCR based AC precharge protection |
11095124, | May 06 2016 | Wobben Properties GmbH | Method for compensating feed-in currents in a wind park |
11245265, | Dec 30 2016 | Wobben Properties GmbH | Method for operating a wind farm |
7851934, | Sep 14 2006 | Vestas Wind Systems A/S | Method for controlling a wind turbine connected to the utility grid, wind turbine and wind park |
7919879, | May 31 2006 | Wisconsin Alumni Research Foundation | Power conditioning architecture for a wind turbine |
8030791, | Jul 31 2008 | Rockwell Automation Technologies, Inc.; ROCKWELL AUTOMATION TECHNOLOGIES, INC | Current source converter-based wind energy system |
8294430, | Jul 26 2007 | Universitaet Kassel | Double-fed asynchronous generator and method for its operation |
8350397, | Jul 31 2008 | Rockwell Automation Technologies, Inc. | Current source converter-based wind energy system |
8587160, | Sep 04 2009 | Rockwell Automation Technologies, Inc. | Grid fault ride-through for current source converter-based wind energy conversion systems |
8648553, | Oct 22 2007 | In Motion AS | Control of heavy machines |
8716885, | Oct 19 2011 | ABB SWITZERLAND LTD, GROUP TECHNOLOGY MANAGEMENT ABB SCHWEIZ AG | Disconnect switch for distributed energy system |
8816625, | Oct 27 2011 | Rockwell Automation Technologies, Inc. | Integrated regenerative AC drive with solid state precharging |
9041327, | Jun 12 2013 | Rockwell Automation Technologies, Inc. | Method and apparatus for overvoltage protection and reverse motor speed control for motor drive power loss events |
9083274, | Apr 08 2013 | Rockwell Automation Technologies, Inc. | Power stage precharging and dynamic braking apparatus for multilevel inverter |
9190871, | Oct 19 2011 | ABB INSTALLATION PRODUCTS INTERNATIONAL LLC | Distributed energy system disconnect switch with mechanical isolation |
9222466, | Aug 13 2010 | VESTAS WIND SYSTEMS A S | Wind-power production with reduced power fluctuations |
9614464, | Oct 22 2007 | In Motion AS | Control of heavy machines |
9742191, | Mar 16 2012 | Wobben Properties GmbH | Method for controlling an arrangement for supplying electric current to a power supply system |
9787210, | Jan 14 2015 | Rockwell Automation Technologies, Inc.; ROCKWELL AUTOMATION TECHNOLOGIES, INC | Precharging apparatus and power converter |
9859710, | Oct 08 2012 | VESTAS WIND SYSTEMS A S | Line impedance compensation system |
9920746, | Jul 13 2012 | Wobben Properties GmbH | Method for controlling an electric generator |
9985561, | Jul 13 2012 | Wobben Properties GmbH | Method and apparatus for feeding electric energy into an electric supply grid |
9997922, | Apr 22 2013 | Wobben Properties GmbH | Method for feeding electrical power into an electrical supply network |
Patent | Priority | Assignee | Title |
1936801, | |||
1956461, | |||
2607910, | |||
3071720, | |||
3184643, | |||
3386002, | |||
3514682, | |||
3708734, | |||
3809979, | |||
3828281, | |||
3897595, | |||
4115727, | Jan 04 1977 | Braking system for three phase motors | |
4129475, | Jul 31 1975 | Westinghouse Electric Corp. | Method of operating a nuclear reactor |
4280059, | Dec 26 1979 | United Technologies Corporation | Detecting power loss in free turbines |
4281386, | Aug 01 1979 | Tokyo Shibaura Denki Kabushiki Kaisha | Systems for detecting faults in electric power systems |
4297738, | Oct 29 1979 | Electric Power Research Institute, Inc. | Apparatus for and method of detecting high impedance faults on distribution circuits with delta connected loads |
4380083, | Sep 21 1978 | Telefonaktiebolaget L M Ericsson | Method of and an arrangement in a telecommunication system for regulating the phase position of a controlled signal in relation to a reference signal |
4482853, | Aug 24 1981 | Reuland Electric Company | Composite control for soft start and dynamic braking of a three-phase induction motor |
4511807, | Apr 20 1982 | NORTHERN ENGINEERING INDUSTRIES PLC , A BRITISH COMPANY | Electrical generator control system |
4535252, | Apr 29 1983 | JACOBS WIND ELECTRIC COMPANY, A CORP OF DEL | Wind electric generation plant and system with improved alternator field excitation |
4605530, | May 04 1982 | Tokyo Shibaura Denki Kabushiki Kaisha | Operating method for nuclear power plants |
4695736, | Nov 18 1985 | GAMESA EOLICA, SA | Variable speed wind turbine |
4719415, | May 24 1984 | MITEC Moderne Industrietechnik GmbH | Arrangement for the measurement of the electric voltage parameters of a high voltage conductor |
4752726, | Sep 09 1986 | Kabushiki Kaisha Toshiba | Reactive power compensation device |
4755738, | Sep 11 1986 | Kabushiki Kaisha Toshiba | Reactive power compensation apparatus |
4814694, | May 17 1988 | Shimizu Construction Co., Ltd. | System for detecting and processing abnormality in electromagnetic shielding of intelligent buildings |
4891744, | Nov 20 1987 | Toshiba Mitsubishi-Electric Industrial Systems Corporation | Power converter control circuit |
4982147, | Jan 30 1989 | State of Oregon acting by and through the State Board of Higher; STATE OF OREGON ACTING BY AND THROUGH THE STATE BOARD OF HIGHER EDUCATION ON BEHALF OF OREGON STATE UNIVERSITY, P O BOX 3175, EUGENE, OR 97403 | Power factor motor control system |
4994684, | Jan 30 1989 | State of Oregon acting by and through the State Board of Higher Education on behalf of Oregon State University | Doubly fed generator variable speed generation control system |
5006781, | May 09 1988 | CUMMINS POWERGEN IP, INC | Microprocessor based integrated generator set controller apparatus and method |
5083039, | Feb 01 1991 | General Electric Company | Variable speed wind turbine |
5168208, | May 09 1988 | CUMMINS POWERGEN IP, INC | Microprocessor based integrated generator set controller apparatus and method |
5181026, | Jan 12 1990 | GRANVILLE GROUP, INC , THE A CORP OF CALIFORNIA | Power transmission line monitoring system |
5216621, | Feb 28 1991 | Mehta Tech. Inc. | Line disturbance monitor and recorder system |
5225712, | Feb 01 1991 | General Electric Company | Variable speed wind turbine with reduced power fluctuation and a static VAR mode of operation |
5237511, | Oct 29 1990 | Westronic, Inc. | Distribution automation smart remote terminal unit |
5278773, | Sep 10 1990 | General Electric Company | Control systems for controlling a wind turbine |
5293411, | Jul 14 1989 | Hitachi, Ltd. | Nuclear reactor power control method and device |
5349364, | Jun 26 1992 | TEXTRON IPMP L P | Electromagnetic power distribution system comprising distinct type couplers |
5369353, | Dec 08 1992 | General Electric Company | Controlled electrical energy storage apparatus for utility grids |
5390068, | May 09 1988 | CUMMINS POWERGEN IP, INC | Microprocessor based integrated generator set controller apparatus and method |
5396165, | Feb 02 1993 | Microchip Technology Incorporated | Efficient power transfer system |
5418446, | May 10 1993 | General Electric Company | Variable speed constant frequency synchronous electric power generating system and method of using same |
5420495, | Apr 19 1993 | Electric Power Research Institute | Transmission line power flow controller |
5422826, | Sep 10 1990 | General Electric Company | Microcontroller based control system for use in a wind turbine |
5506789, | Oct 15 1993 | The Texas A & M University System | Load extraction fault detection system |
5524128, | Nov 17 1993 | ENTERGY OPERATIONS, INC ; PECO Energy Company | Boiling water reactor stability control |
5528444, | Sep 23 1994 | GENERAL ELECTRIC COMPANY 2901 EAST LAKE | Automatic overvoltage protection for an alternator in a locomotive propulsion system |
5528445, | Sep 23 1994 | General Electric Company | Automatic fault current protection for a locomotive propulsion system |
5536976, | Mar 03 1994 | Gas Technology Institute | Multiple service load solid state switching for controlled cogeneration system |
5610501, | Feb 01 1995 | SIEMENS POWER GENERATION, INC ; SIEMENS ENERGY, INC | Dynamic power and voltage regulator for an ac transmission line |
5684389, | Dec 27 1994 | Siemens Aktiengesellschaft | Switch-off method for a three-phase reactive power compensator with two thyristor switches |
5706158, | Jul 26 1993 | Siemens Aktiengesellschaft | Method for short-circuit current limiting on an electrical power transmission line and configuration for short-circuit limiting |
5729120, | Dec 30 1996 | POWERWARE CORPORATION, A DELAWARE CORPORATION | Dynamic voltage regulation stabilization for AC power supply systems |
5734257, | Jul 22 1994 | Electric Power Research Institute, Inc. | Transmission line power controller with a continuously controllable voltage source responsive to a real power demand and a reactive power demand |
5734586, | May 05 1995 | Cornell Research Foundation, Inc | System for achieving optimal steady state in power distribution networks |
5754035, | Jan 14 1997 | SIEMENS POWER GENERATION, INC ; SIEMENS ENERGY, INC | Apparatus and method for controlling flow of power in a transmission line including stable reversal of power flow |
5798631, | Oct 02 1996 | STATE OF OREGON ACTING BY AND THROUGH THE STATE BOARD OF HIGHER EDUCATION ON BEHALF OR OREGON STATE UNIVERSITY, THE | Performance optimization controller and control method for doubly-fed machines |
5798632, | Jul 18 1995 | Alliance for Sustainable Energy, LLC | Variable speed wind turbine generator with zero-sequence filter |
5798634, | Sep 30 1994 | Mitsubishi Denki Kabushiki Kaisha | Load management and control apparatus |
5825162, | Jul 25 1994 | Hitachi, LTD | Electric power flow controller |
5873251, | Sep 13 1995 | Kabushiki Kaisha Toshiba | Plant operation control system |
5890097, | Mar 04 1997 | Eaton Corporation | Apparatus for waveform disturbance monitoring for an electric power system |
5899960, | May 19 1994 | Reliable Power Meters, Inc. | Apparatus and method for power disturbance analysis and storage of power quality information |
5907192, | Jun 09 1997 | General Electric Company | Method and system for wind turbine braking |
5953238, | Mar 12 1996 | General Electric Company | Method for generating control system setpoints with implicit dependencies |
5963457, | Mar 18 1994 | Hitachi, Ltd. | Electrical power distribution monitoring system and method |
6008633, | Sep 29 1995 | Siemens Aktiengesellschaft | High-power grid-compatible converter-controlled, voltage-injecting phase-shifting transformer |
6081104, | Nov 20 1998 | Applied Power Corporation | Method and apparatus for providing energy to a lighting system |
6091615, | Nov 28 1997 | Denso Corporation | Resonant power converter |
6093975, | Oct 27 1998 | Capstone Turbine Corporation | Turbogenerator/motor control with synchronous condenser |
6128204, | Aug 26 1998 | Northrop Grumman Corporation | Line power unit for micropower generation |
6144924, | May 20 1996 | CRANE NUCLEAR, INC | Motor condition and performance analyzer |
6175810, | Sep 26 1997 | Siemens AG | Method of generating a signal identifying a three-pole short-circuit occuring in a three-phase power transmission line |
6188205, | Mar 09 1999 | Mitsubishi Denki Kabushiki Kaisha; The Kansai Electric Power Co., Inc. | Power system control apparatus and power system control method |
6215202, | May 21 1998 | BECHTEL ENTERPRISES INC ; Siemens Aktiengesellschaft | Shunt connected superconducting energy management system having a single switchable connection to the grid |
6281601, | Jul 23 1999 | Capstone Turbine Corporation | Turbogenerator power control system and method |
6313752, | May 21 1998 | JOHN & MATILDE F LINDERS FOUNDATION, INC ; CORRIGAN, STEVEN P | System for displaying dynamic on-line operating conditions of an interconnected power transmission network |
6404075, | Jan 18 2000 | ENGIE SERVICES U S INC | Uninterruptible power generation system |
6496757, | Jul 30 1999 | Illinois Institute of Technology | Nonlinear contingency screening for voltage collapse |
6498462, | Feb 05 2001 | Plug Power Inc. | Generator control system to accommodate a decrease in a power grid voltage |
6512966, | Dec 29 2000 | ABB POWER GRIDS SWITZERLAND AG | System, method and computer program product for enhancing commercial value of electrical power produced from a renewable energy power production facility |
6518736, | Jun 26 2000 | Toyota Jidosha Kabushiki Kaisha; Kabushiki Kaisha Toyota Chuo Kenkyusho | Mechanical power outputting apparatus and inverter apparatus |
6535797, | Feb 01 2000 | Spectrum Engineering Corporation | Electrical distribution system and method of monitoring and/or controlling same |
6664653, | Oct 27 1998 | Capstone Turbine Corporation | Command and control system for controlling operational sequencing of multiple turbogenerators using a selected control mode |
6671585, | Dec 29 2000 | ABB POWER GRIDS SWITZERLAND AG | System, method and computer program product for enhancing commercial value of electrical power produced from a renewable energy power production facility |
6681156, | Sep 28 2000 | Siemens Aktiengesellschaft | System and method for planning energy supply and interface to an energy management system for use in planning energy supply |
6687574, | Nov 01 2001 | Intellectual Ventures II LLC | System and method for surveying utility outages |
6690224, | Jun 27 2001 | MONTEREY RESEARCH, LLC | Architecture of a PLL with dynamic frequency control on a PLD |
6693409, | Jul 23 2001 | WEG Electric Corp | Control system for a power converter and method of controlling operation of a power converter |
6714427, | Nov 07 2002 | Current modulation of direct current transmission lines | |
6769873, | Oct 08 2002 | NAVY, UNITED STATES OF AMERICA, AS REPRESENTED BY THE SECRETARY OF THE, THE | Dynamically reconfigurable wind turbine blade assembly |
6784634, | Sep 14 2001 | DUAL STATOR TECHNOLOGIES, INC | Brushless doubly-fed induction machine control |
6812586, | Jan 30 2001 | Capstone Turbine Corporation | Distributed power system |
6838781, | Apr 04 2001 | Cogen Microsystems PTY LTD | Control system for a cogeneration unit |
6838860, | Sep 21 2001 | Honeywell International Inc. | Power generating system including permanent magnet generator and shunt AC regulator |
6870279, | Jan 05 1998 | Capstone Turbine Corporation | Method and system for control of turbogenerator power and temperature |
6891281, | May 11 2000 | Method for operating a wind power station and wind power station | |
6921985, | Jan 24 2003 | General Electric Company | Low voltage ride through for wind turbine generators |
6924991, | Jan 23 2003 | Spellman High Voltage Electronics Corporation | Energy transfer multiplexer |
6958550, | Apr 02 1998 | Capstone Turbine Corporation | Method and system for control of turbogenerator power and temperature |
6984897, | Jan 23 2003 | Spellman High Voltage Electronics Corporation | Electro-mechanical energy conversion system having a permanent magnet machine with stator, resonant transfer link and energy converter controls |
6990395, | Dec 30 1994 | Power Measurement Ltd. | Energy management device and architecture with multiple security levels |
7068480, | Oct 17 2001 | Square D Company | Arc detection using load recognition, harmonic content and broadband noise |
7091702, | Dec 07 2004 | Hamilton Sundstrand Corporation | Digital real and reactive load division control |
7092798, | May 13 2003 | Siemens Aktiengesellschaft | System for control performance standards |
7116010, | Sep 17 2002 | Wisconsin Alumni Research Foundation | Control of small distributed energy resources |
7117105, | Feb 25 2002 | ABB Schweiz AG | Method and apparatus for ground fault protection |
7119452, | Sep 03 2003 | General Electric Company | Voltage control for wind generators |
7151329, | Feb 25 2002 | ABB Schweiz AG | Integrated protection, monitoring, and control system |
7171287, | Dec 10 2003 | Siemens Aktiengesellschaft | System and method for planning energy supply and interface to an energy management system for use in planning energy supply |
7188260, | Aug 29 2001 | Cisco Technology, Inc. | Apparatus and method for centralized power management |
7202638, | Oct 15 2004 | General Electric Company | Anti-islanding protection systems for synchronous machine based distributed generators |
7224081, | Sep 03 2003 | GE INFRASTRUCTURE TECHNOLOGY LLC | Voltage control for wind generators |
7239036, | Jul 29 2005 | GE INFRASTRUCTURE TECHNOLOGY LLC | System and method for power control in wind turbines |
7256509, | Aug 15 2003 | Siemens Gamesa Renewable Energy Service GmbH | Wind power plant comprising a rotor blade adjusting device |
7268443, | Aug 06 2004 | Hitachi, Ltd. | Wind turbine generator system |
7312537, | Jun 19 2006 | GE INFRASTRUCTURE TECHNOLOGY LLC | Methods and apparatus for supplying and/or absorbing reactive power |
7321221, | Jul 17 2002 | GE WIND ENERGY GMBH | Method for operating a wind power plant and method for operating it |
7332827, | Feb 07 2003 | VESTAS WIND SYSTEMS A S | Method for controlling a power-grid connected wind turbine generator during grid faults and apparatus for implementing said method |
7339355, | May 07 2003 | CLIPPER WINDPOWER, LLC | Generator with utility fault ride-through capability |
7397143, | Jun 19 2006 | GE INFRASTRUCTURE TECHNOLOGY LLC | Methods and apparatus for supplying and/or absorbing reactive power |
20020046155, | |||
20020070715, | |||
20020105306, | |||
20020109411, | |||
20020190525, | |||
20030015873, | |||
20040135436, | |||
20040207206, | |||
20040245783, | |||
20040264082, | |||
20050152083, | |||
20060082936, | |||
20060163881, | |||
20060163882, | |||
20060192390, | |||
20060208784, | |||
20060267560, | |||
20070085344, | |||
20070159265, | |||
20070187955, | |||
20070246943, | |||
20070273155, | |||
20070278797, | |||
20070290506, | |||
20080001408, | |||
20080007121, | |||
20080030027, | |||
20080067815, | |||
20080069692, | |||
20080073912, | |||
20080088129, | |||
20080093853, | |||
20080093854, | |||
20080093855, | |||
20080093856, | |||
20080093857, | |||
20080106098, | |||
20080111380, | |||
20080150282, | |||
20080150484, | |||
AU2002319133, | |||
CA2315003, | |||
DE10019362, | |||
DE10022974, | |||
DE10033029, | |||
DE10059018, | |||
DE19620906, | |||
DE19624809, | |||
DE19634464, | |||
DE19651364, | |||
DE19719308, | |||
DE19948196, | |||
DE29621449, | |||
DE3833719, | |||
DE4428086, | |||
EP677911, | |||
GB2330256, | |||
JP8182202, | |||
WO173518, | |||
WO2086314, | |||
WO2004040748, | |||
WO2005015012, | |||
WO9952193, | |||
WO19094, | |||
WO125628, | |||
WO125630, | |||
WO9311604, |
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